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首页> 外文期刊>Advanced energy materials >High Performance Lithium Metal Batteries Enabled by Surface Tailoring of Polypropylene Separator with a Polydopamine/Graphene Layer
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High Performance Lithium Metal Batteries Enabled by Surface Tailoring of Polypropylene Separator with a Polydopamine/Graphene Layer

机译:通过聚多巴胺/石墨烯层的聚丙烯隔膜的表面定制实现高性能锂金属电池

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摘要

Lithium (Li) metal batteries suffer from the intrinsic issues associated with poor Coulombic efficiency and dendritic Li growth. Herein, a multifunctional trilayer membrane is reported first by depositing a dual layer of a polydopamine (PDA) and a graphene-carboxymethyl cellulose (Gr-CMC) on top of the standard polypropylene separator in order to enhance the cycle performance and electrochemical stabilities of Li metal electrodes. The Gr-CMC layer of the designed separator has an excellent electrolyte wettability, enhanced electrical conductivity, and additional capacity for Li storage. These strong benefits facilitate the excellent and effective electrochemical reactions and kinetics in both the Li/Cu half-cell and the Li/LiFePO4 (LFP) full cell. When the PDA/Gr-CMC separator is employed in both systems, the cycle stability and Coulombic efficiency are dramatically improved and the interfacial impedance between the electrode and the separator is significantly reduced. Electrochemical stability tests at 0 degrees C further demonstrate the positive potential of the designed separator for facilitating the stable operation of Li metal batteries. The approach not only serves as an effective way of enhancing the life-time and capacity of Li metal batteries but also can broaden the material options for the development of advanced Li metal batteries.
机译:锂(Li)金属电池具有与库仑效率差和树枝状Li增长有关的内在问题。在本文中,首先报道了一种多功能三层膜,方法是在标准聚丙烯隔膜的顶部沉积聚多巴胺(PDA)和石墨烯-羧甲基纤维素(Gr-CMC)的双层膜,以增强锂的循环性能和电化学稳定性金属电极。设计的隔膜的Gr-CMC层具有出色的电解质润湿性,增强的电导率和额外的锂存储容量。这些强大的优势促进了Li / Cu半电池和Li / LiFePO4(LFP)全电池的出色且有效的电化学反应和动力学。当在两个系统中都使用PDA / Gr-CMC隔板时,循环稳定性和库仑效率显着提高,电极与隔板之间的界面阻抗也大大降低。在0摄氏度下的电化学稳定性测试进一步证明了所设计隔板的正电位,以促进锂金属电池的稳定运行。该方法不仅是延长锂金属电池寿命和容量的有效途径,而且可以为开发高级锂金属电池提供更多的材料选择。

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